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  2. Ring strain - Wikipedia

    en.wikipedia.org/wiki/Ring_strain

    In some molecules, torsional strain can contribute to ring strain in addition to angle strain. One example of such a molecule is cyclopropane. Cyclopropane's carbon-carbon bonds form angles of 60°, far from the preferred angle of 109.5° angle in alkanes, so angle strain contributes most to cyclopropane's ring strain. [10]

  3. Cyclopropane - Wikipedia

    en.wikipedia.org/wiki/Cyclopropane

    The small size of the ring creates substantial ring strain in the structure. Cyclopropane itself is mainly of theoretical interest but many of its derivatives - cyclopropanes - are of commercial or biological significance. [3] Cyclopropane was used as a clinical inhalational anesthetic from the 1930s through the 1980s. The substance's high ...

  4. Prelog strain - Wikipedia

    en.wikipedia.org/wiki/Prelog_strain

    Rings smaller than cyclohexane, like cyclopropane and cyclobutane, have significant tension caused by small-angle strain, but there is no transannular strain. While there is no small-angle strain present in medium-sized rings, there does exist something called large-angle strain. Some angle and torsional strain is used by rings with more than ...

  5. Cycloalkane - Wikipedia

    en.wikipedia.org/wiki/Cycloalkane

    Its ring strain is therefore slightly less, at around 110 kJ mol −1. For a theoretical planar cyclopentane the C–C–C bond angles would be 108°, very close to the measure of the tetrahedral angle. Actual cyclopentane molecules are puckered, but this changes only the bond angles slightly so that angle strain is relatively small.

  6. Activation of cyclopropanes by transition metals - Wikipedia

    en.wikipedia.org/wiki/Activation_of_cyclopro...

    Because of the large ring strain energy of cyclopropanes (29.0 kcal per mole), they are often used as substrates for C-C activation through oxidative addition of a transition metal into one of the three C-C bonds leading to a metallacyclobutane intermediate. Substituents on the cyclopropane affect the course of its activation. [3]

  7. Cyclopropanation - Wikipedia

    en.wikipedia.org/wiki/Cyclopropanation

    In organic chemistry, cyclopropanation refers to any chemical process which generates cyclopropane ((CH 2) 3) rings.It is an important process in modern chemistry as many useful compounds bear this motif; for example pyrethroid insecticides and a number of quinolone antibiotics (ciprofloxacin, sparfloxacin, etc.).

  8. Strain (chemistry) - Wikipedia

    en.wikipedia.org/wiki/Strain_(chemistry)

    The strain energy of cyclopropane and cyclobutane are 27.5 and 26.3 kcal mol −1, respectively. [1] Cyclopentane experiences much less strain, mainly due to torsional strain from eclipsed hydrogens: its preferred conformations interconvert by a process called pseudorotation. [4]: 14 Ring strain can be considerably higher in bicyclic systems.

  9. Ring-opening polymerization - Wikipedia

    en.wikipedia.org/wiki/Ring-opening_polymerization

    Ring-opening of cyclic monomers is often driven by the relief of bond-angle strain. Thus, as is the case for other types of polymerization, the enthalpy change in ring-opening is negative. [ 3 ] Many rings undergo ROP.